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Either I missed some backlash or backlashing does not seem to work with too much programmer-quote-looping.

$ echo "hello1-`echo hello2-\`echo hello3-\`echo hello4\`\``"

hello1-hello2-hello3-echo hello4

Wanted

hello1-hello2-hello3-hello4-hello5-hello6-...
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The question should probably read "How to use Bash backticks recursively". That should help the Googlers out there. –  Joey Adams Apr 17 '10 at 2:46
    
what is it that you are trying to do.? this has no meaning at all. –  ghostdog74 Apr 17 '10 at 2:46
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@joey, title changed, ure welcome :D –  Stormenet Apr 17 '10 at 2:49
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Oops, scratch that. It should read "How do I nest backticks in bash?" . I got recursion and nesting mixed up. –  Joey Adams Apr 17 '10 at 2:53
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4 Answers 4

up vote 39 down vote accepted

Use $(commands) instead:

$ echo "hello1-$(echo hello2-$(echo hello3-$(echo hello4)))"
hello1-hello2-hello3-hello4

$(commands) does the same thing as backticks, but you can nest them.

You may also be interested in Bash range expansions:

echo hello{1..10}
hello1 hello2 hello3 hello4 hello5 hello6 hello7 hello8 hello9 hello10
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+1 like the {1..10}. Limit it with array? ZSH can "${$( date )[2,4]}". Why not: "echo ${echo hello1-$(echo hello2)[1]}"? –  hhh Apr 17 '10 at 11:03
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if you insist to use backticks, following could be done

$ echo "hello1-`echo hello2-\`echo hello3-\\\`echo hello4\\\`\``"

you have to put backslashes, \\ \\\\ \\\\\\\\ by 2x and so on, its just very ugly, use $(commands) as other suggested.

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It's a lot easier if you use bash's $(cmd) command substitution syntax, which is much more friendly to being nested:

$ echo "hello1-$(echo hello2-$(echo hello3-$(echo hello4)))"
hello1-hello2-hello3-hello4
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This is not restricted to bash. It is available in all shells that conform to POSIX 1003.1 (“POSIX shells”) and most Bourne-derived shell (ksh, ash, dash, bash, zsh, etc.) though not the actual Bourne shell (i.e. heirloom.sourceforge.net/sh.html ). –  Chris Johnsen Apr 17 '10 at 3:02
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Any time you want to evaluate a command use command substitution:

$(command)

Any time you want to evaluate an arithmetic expression use expression substitution:

$((expr))

You can nest these like this:

Let's say file1.txt is 30 lines long and file2.txt is 10 lines long, than you can evaluate an expression like this:

$(( $(wc -l file1.txt) - $(wc -l file2.txt) ))

which would output 20 ( the difference in number of lines between two files).

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